Nitrate and Bacterial Loads in Dairy Cattle Drinking Water and Potential Treatment Options for Pollutants—A Review
Abstract
:1. Introduction
2. Materials and Methods
3. Nitrate and Bacterial Contamination in Dairy Cattle Drinking Water
3.1. Nitrate and Microbial Pollution Present in Dairy Cattle Drinking Water: Sources, Recommended Levels, and Health Impacts
3.2. Current Manure Handling Practices
3.3. Water Treatment Options
3.4. Filter Media Options for Adsorption
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Media Type | Targeted Pollutant (NO3− or E. coli) | Methods/Conditions | Effectiveness | Reference |
---|---|---|---|---|
Bentonite clay | NO3− | Varying percentages (0, 2, 4%) of bentonite added to sandy soils and leachate of fertilizer measured after filtering through columns | Increasing amounts of bentonite decreased nitrate leaching and increased NO3− retention in soil (4% bentonite decreased leachate concentrations by 12–19%) | [57,66] |
NO3− | Bentonite clay is modified with HDTMA and then mixed and centrifuged with nitrate solution (100 mg/L) | The modification method modified the surface to be positive which greatly increased the nitrate adsorption of bentonite as compared to the unmodified form which was essentially ineffective | [66,67,68] | |
NO3− | Batch experimentation with unmodified bentonite and synthetic landfill leachate mixed together for varying durations and in different ambient temperatures with the mixture filtered and analyzed for nitrate (and other forms of N) concentrations | Longer mixing times and higher temperatures lead to higher adsorption rates. A maximum reduction of 17.33% nitrate was achieved with bentonite | [67,69] | |
NO3− | Bentonite clay activated with HCL used in batch experimentation with mixing and centrifugation to assess nitrate adsorption | The activated bentonite is able to achieve an 80% nitrate ion reduction from aqueous solution with a maximum adsorption of 7.5 mg/g under ideal conditions | [58,68,70] | |
Activated carbon | NO3− | GAC treated with both sodium hydroxide and a cationic surfactant used to assess nitrate adsorption within batch experiments | The maximum adsorption capacity for the modified GAC found to be 21.51 mg/g | [69] |
NO3− | A review of modified, composite, and raw forms of AC and its ability to adsorb nitrate | Modified and composite forms of AC generally have higher adsorption capacity for nitrate than raw forms | [48,66,69] | |
E. coli | Point-of-use AC filtration units were installed at homes with private wells, and influent and effluent bacterial concentrations were counted and compared | AC filter effluent bacteria levels were elevated as compared to influent numbers but only if left stagnant overnight; with flushing (2 min), the AC filtered effluent had lower bacteria counts compared to influent | [68,70,71] | |
E. coli | Commercial activated carbon block filters were tested for their ability to filter E. coli under simulated household usage patterns for 29 days | As compared to the spiked influent level, the effluent bacteria counts of E. coli varied from 24 to 60% | [70,71] | |
E. coli | AC modified with six different antimicrobial chemicals used for column filtration. Filter media post filtration are inoculated on agar plates, and colonies are counted after incubation | All six filter media showed >6 log removal, the recommended USEPA level for human drinking water, even with extended use | [45] | |
Wood-based material (i.e., woodchips) | NO3− | Sawdust mixed into soil (30% by volume) and constructed into a denitrification wall to intercept groundwater with nitrate removal measured and calculated | Over the study duration of 1 year, it was determined that the denitrification wall can effectively reduce nitrate concentrations in groundwater | [71] |
NO3− and E. coli | Upflow woodchip bioreactor columns designed to test the E. coli and nitrate removal capacity at different temperatures and hydraulic retention times | At the higher ambient temperature (21.5 °C), the reactor achieved an 87% reduction and at 10 °C achieved a 75% reduction in E. coli levels compared to influent levels; the longer (24 h) HRT achieved a 96% reduction in nitrate | [64] |
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Douglas, C.; Pandey, P. Nitrate and Bacterial Loads in Dairy Cattle Drinking Water and Potential Treatment Options for Pollutants—A Review. Appl. Sci. 2025, 15, 3017. https://doi.org/10.3390/app15063017
Douglas C, Pandey P. Nitrate and Bacterial Loads in Dairy Cattle Drinking Water and Potential Treatment Options for Pollutants—A Review. Applied Sciences. 2025; 15(6):3017. https://doi.org/10.3390/app15063017
Chicago/Turabian StyleDouglas, Ceilidh, and Pramod Pandey. 2025. "Nitrate and Bacterial Loads in Dairy Cattle Drinking Water and Potential Treatment Options for Pollutants—A Review" Applied Sciences 15, no. 6: 3017. https://doi.org/10.3390/app15063017
APA StyleDouglas, C., & Pandey, P. (2025). Nitrate and Bacterial Loads in Dairy Cattle Drinking Water and Potential Treatment Options for Pollutants—A Review. Applied Sciences, 15(6), 3017. https://doi.org/10.3390/app15063017